9

I have a variable:

string item;

It gets initialized at run-time. I need to convert it to long. How to do it? I have tried atol() and strtol() but I always get following error for strtol() and atol() respectively:

cannot convert 'std::string' to 'const char*' for argument '1' to 'long int strtol(const char*, char**, int)'

cannot convert 'std::string' to 'const char*' for argument '1' to 'long int atol(const char*)'
2
  • 1
    string has a function c_str that will expose it as a const char* Commented Aug 2, 2012 at 11:11
  • 2
    item.c_str() will return const char* of the std::string.
    – hmjd
    Commented Aug 2, 2012 at 11:12

5 Answers 5

24

c++11:

long l = std::stol(item);

http://en.cppreference.com/w/cpp/string/basic_string/stol

C++98:

char * pEnd;.
long l = std::strtol(item.c_str(),&pEnd,10);

http://en.cppreference.com/w/cpp/string/byte/strtol

5
  • Worth mentioning this is C++11, so you'll need to check you have an up to date compiler, and which flags to use.
    – BoBTFish
    Commented Aug 2, 2012 at 11:17
  • -1 for long l = atol(item.c_str()); because this function is unsafe! Commented Aug 2, 2012 at 11:21
  • 3
    @Nawaz: "Unsafe" is a bit hyperbolic. It doesn't allow you to check whether the input really was a numerical string; whether or not that's "safe" depends on where it comes from and what you're doing with it. Commented Aug 2, 2012 at 11:54
  • For the record calls to atol result in undefined behavior if an error occurred.
    – log0
    Commented Aug 2, 2012 at 11:56
  • @Nawaz this is why I check to make sure my string is a valid number before I do anything like these top to examples. But is it still "Unsafe" if I do this?
    – Sharp Dev
    Commented Oct 12, 2018 at 1:07
22

Try like this:

long i = atol(item.c_str());
8
  • thnx! I was not knowing that C++ string needs to be converted to char* using c_str()
    – kunal18
    Commented Aug 2, 2012 at 11:18
  • 6
    -1 for long i = atol(item.c_str()); because this function is unsafe! Commented Aug 2, 2012 at 11:22
  • 2
    @tenfour: Trying this : cout << atoi("9879abc879xyz"); See what it prints! Commented Aug 2, 2012 at 11:38
  • 1
    I guess we have different ideas what it means for something to be "unsafe". This is just quirky behavior which in a lot of situations is even preferred. Obviously atol is about 3-4 levels away from being a great answer, but "unsafe" seems like an exaggeration.
    – tenfour
    Commented Aug 2, 2012 at 11:42
  • 2
    @tenfour: It is unsafe, because it doesn't tell you that it didn't really convert the whole string, and doesn't tell you the problem. It is unsafe because it doesn't tell you the between these two calls : atoi("0") and atoi("abc"). Both return 0. :P Commented Aug 2, 2012 at 11:45
6

Use a string stream.

#include <sstream>

// code...
std::string text;
std::stringstream buffer(text);
long var;
buffer >> var;
5

Use std::stol < characters to fill space >

2

If you don't have access to C++11, and you can use the boost library, you can consider this option:

long l = boost::lexical_cast< long >( item );

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